TY - JOUR
T1 - Boosted Hydrogen Evolution via Molten Salt Synthesis of Vacancy-Rich MoSxSe2-x Electrocatalysts
AU - Li, Boxin
AU - Wang, Ke
AU - He, Song
AU - Du, Hongfang
AU - Wang, Tingfeng
AU - Du, Zhuzhu
AU - Ai, Wei
N1 - Publisher Copyright:
© 2024 American Chemical Society.
PY - 2024/3/25
Y1 - 2024/3/25
N2 - MoSxSe2-x emerges as a potent alternative to Pt-based electrodes in the electrochemical hydrogen evolution reaction (HER), although its practical application is hindered by suboptimal synthetic methods. Herein, a KSCN molten salt strategy is introduced, enabling the straightforward synthesis of MoSxSe2-x at a modest temperature of 320 °C through a one-step heating process involving Se powder and Na2MoO4 in a muffle furnace. It is elucidated that MoO42- facilitates the decomposition of KSCN to S2-, which subsequently activates Se powder, culminating in the formation of the SexS2- polyanion. This polyanion then interacts with MoO42-, yielding MoSxSe2-x characterized by a profusion of anion vacancies. This is attributed to the introduction of Se heteroatoms, causing lattice distortion and the substantial steric hindrance of SexS2-, limiting crystal growth. Theoretical analyses indicate that the presence of Se atoms and anion vacancies collaboratively modulates the electronic structure of MoSxSe2-x. This results in a minimized band gap of 0.88 eV and an almost zero ΔGH* of 0.09 eV in the optimized MoS1.5Se0.5. Consequently, MoS1.5Se0.5 exhibits remarkable HER performance, characterized by a low η10 of 103 mV and a minimal Tafel slope of 33 mV dec-1, alongside robust stability. This research not only unveils a potent electrocatalyst for HER but also introduces a simplified synthesis strategy for transition metal selenosulfides, broadening their applicability across various domains.
AB - MoSxSe2-x emerges as a potent alternative to Pt-based electrodes in the electrochemical hydrogen evolution reaction (HER), although its practical application is hindered by suboptimal synthetic methods. Herein, a KSCN molten salt strategy is introduced, enabling the straightforward synthesis of MoSxSe2-x at a modest temperature of 320 °C through a one-step heating process involving Se powder and Na2MoO4 in a muffle furnace. It is elucidated that MoO42- facilitates the decomposition of KSCN to S2-, which subsequently activates Se powder, culminating in the formation of the SexS2- polyanion. This polyanion then interacts with MoO42-, yielding MoSxSe2-x characterized by a profusion of anion vacancies. This is attributed to the introduction of Se heteroatoms, causing lattice distortion and the substantial steric hindrance of SexS2-, limiting crystal growth. Theoretical analyses indicate that the presence of Se atoms and anion vacancies collaboratively modulates the electronic structure of MoSxSe2-x. This results in a minimized band gap of 0.88 eV and an almost zero ΔGH* of 0.09 eV in the optimized MoS1.5Se0.5. Consequently, MoS1.5Se0.5 exhibits remarkable HER performance, characterized by a low η10 of 103 mV and a minimal Tafel slope of 33 mV dec-1, alongside robust stability. This research not only unveils a potent electrocatalyst for HER but also introduces a simplified synthesis strategy for transition metal selenosulfides, broadening their applicability across various domains.
KW - anion vacancy
KW - hydrogen evolution reaction
KW - KSCN
KW - molten salt
KW - MoSSe
UR - http://www.scopus.com/inward/record.url?scp=85187521467&partnerID=8YFLogxK
U2 - 10.1021/acssuschemeng.3c07215
DO - 10.1021/acssuschemeng.3c07215
M3 - 文章
AN - SCOPUS:85187521467
SN - 2168-0485
VL - 12
SP - 4867
EP - 4875
JO - ACS Sustainable Chemistry and Engineering
JF - ACS Sustainable Chemistry and Engineering
IS - 12
ER -